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The suprachiasmatic nucleus changes the daily activity of the arcuate nucleus α-MSH neurons in male rats

机译:视交叉上核改变了雄性大鼠弓形核α-MSH神经元的日常活动

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Timing of metabolic processes is crucial for balanced physiology; many studies have shown the deleterious effects of untimely food intake. The basis for this might be an interaction between the arcuate nucleus (ARC) as the main integration site for metabolic information and the suprachiasmatic nucleus (SCN) as the master clock. Hereweshowin male rats that theSCNinfluencesARCdaily neuronal activity by imposing a daily rhythm on theα-MSHneurons with a peak in neuronal activity at the end of the dark phase. Bilateral SCN lesions showed a complete disappearance of ARC neuronal rhythms and unilateral SCN lesions showed a decreased activation in the ARC at the lesioned side. Moreover light exposure during the dark phase inhibited ARC and α-MSH neuronal activity. The daily inhibition of ARC neuronal activity occurred in light-dark conditions as well as in dark-dark conditions, demonstrating the inhibitory effect to be mediated by increased SCN (subjective) day neuronal activity. Injections into the SCN with the neuronal tracer cholera toxin B showed that α-MSH neurons receive direct projections from the SCN. The present study demonstrates that the SCN activates and possibly also inhibits depending on the moment of the circadian cycle ARC α-MSH neurons via direct neuronal input. The persistence of these activity patterns in fasted animals demonstrates that this SCN-ARC interaction is not necessarily satiety associated but may support physiological functions associated with changes in the sleep-wake cycle.
机译:代谢过程的时机对平衡生理至关重要。许多研究表明不及时摄入食物会产生有害影响。这样做的基础可能是作为代谢信息的主要整合位点的弓形核(ARC)和作为主时钟的视交叉上核(SCN)之间的相互作用。我们在这只雄性大鼠中发现,SCN通过在α-MSH神经元上施加每日节律来影响ARC的每日神经元活动,在黑暗阶段结束时神经元活动达到峰值。双侧SCN病变显示ARC神经节律完全消失,单侧SCN病变显示病变侧ARC的激活减少。此外,在黑暗期中的光照抑制了ARC和α-MSH神经元的活性。 ARC神经元活性的每日抑制发生在明暗条件下以及暗暗条件下,这表明抑制作用是由增加的SCN(主观)日神经元活动介导的。向SCN中注射神经元示踪霍乱毒素B表明,α-MSH神经元直接从SCN投射。本研究表明,SCN通过直接神经元输入根据昼夜周期ARCα-MSH神经元的时刻激活并可能抑制。这些活动模式在禁食动物中的持久性表明,这种SCN-ARC交互作用不一定与饱腹感相关,而是可以支持与睡眠-觉醒周期变化相关的生理功能。

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